Grey relational with BP_PSO for time series foreasting
This paper proposes an effective hybridization of grey relational analysis (GRA) and Backpropagation Particle Swarm Optimization (BP_PSO) for time series forecasting. The hybridization employs the complementary strength of these two appealing techniques. Additionally the combination of GRA and BP as...
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my.utm.152482020-08-30T08:46:10Z http://eprints.utm.my/id/eprint/15248/ Grey relational with BP_PSO for time series foreasting Shamsuddin, Siti Mariyam Sallehudin, Roselina QA75 Electronic computers. Computer science This paper proposes an effective hybridization of grey relational analysis (GRA) and Backpropagation Particle Swarm Optimization (BP_PSO) for time series forecasting. The hybridization employs the complementary strength of these two appealing techniques. Additionally the combination of GRA and BP as cooperative feature selection (CFS) has successfully assessed the importance of each input variable and automatically suggest the optimum input numbers for the forecasting task. Therefore it assists the forecaster to choose the optimum number of dominant input factor without a need to acquire expert domain knowledge. It also helps to reduce the interference of irrelevant inputs on the forecasting accuracy performance. To test the effectiveness of the proposed hybrid GRABP_PSO, the dataset of closing price from Kuala Lumpur Stock Exchange (KLSE) is used. The results show that the proposed model, GRBP_PSO out performed BP_PSO model and BP model in term of accuracy and convergence time. 2009 Conference or Workshop Item PeerReviewed Shamsuddin, Siti Mariyam and Sallehudin, Roselina (2009) Grey relational with BP_PSO for time series foreasting. In: 2009 IEEE International Conference on Systems, Man and Cybernatics (SMC 2009), 2009, Texas, Amerika Syarikat. http://dx.doi.org/10.1109/ICSMC.2009.5346304 |
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QA75 Electronic computers. Computer science Shamsuddin, Siti Mariyam Sallehudin, Roselina Grey relational with BP_PSO for time series foreasting |
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This paper proposes an effective hybridization of grey relational analysis (GRA) and Backpropagation Particle Swarm Optimization (BP_PSO) for time series forecasting. The hybridization employs the complementary strength of these two appealing techniques. Additionally the combination of GRA and BP as cooperative feature selection (CFS) has successfully assessed the importance of each input variable and automatically suggest the optimum input numbers for the forecasting task. Therefore it assists the forecaster to choose the optimum number of dominant input factor without a need to acquire expert domain knowledge. It also helps to reduce the interference of irrelevant inputs on the forecasting accuracy performance. To test the effectiveness of the proposed hybrid GRABP_PSO, the dataset of closing price from Kuala Lumpur Stock Exchange (KLSE) is used. The results show that the proposed model, GRBP_PSO out performed BP_PSO model and BP model in term of accuracy and convergence time. |
format |
Conference or Workshop Item |
author |
Shamsuddin, Siti Mariyam Sallehudin, Roselina |
author_facet |
Shamsuddin, Siti Mariyam Sallehudin, Roselina |
author_sort |
Shamsuddin, Siti Mariyam |
title |
Grey relational with BP_PSO for time series foreasting |
title_short |
Grey relational with BP_PSO for time series foreasting |
title_full |
Grey relational with BP_PSO for time series foreasting |
title_fullStr |
Grey relational with BP_PSO for time series foreasting |
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Grey relational with BP_PSO for time series foreasting |
title_sort |
grey relational with bp_pso for time series foreasting |
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2009 |
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http://eprints.utm.my/id/eprint/15248/ http://dx.doi.org/10.1109/ICSMC.2009.5346304 |
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